A multi-carrier receiver, multi-carrier transmitter and a multi-carrier transceiver system are provided. The multi-carrier receiver includes at least a first processing unit, a routed switch and a second processing unit. The first processing unit has M first processing paths, performs intensity processing to at least one RF signal for outputting sub-carrier signals. The routed switch has M input terminals and N output terminals, where the M input terminals are respectively coupled to the M first processing paths and receive the sub-carrier signals. The routed switch connects each input terminal to at least one output terminal or none of the output terminals according to a control signal. The second processing unit has N second processing paths respectively coupled to the N output terminals for demodulating the sub-carrier signals and performing an analog-to-digital conversion to the demodulated signals for generating digital signals, where M and N are greater than 0.
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1. A multi-carrier receiver, comprising:
a first signal processing unit, having M first signal processing paths, and configured for performing a first signal processing to at least one radio frequency (RF) signal for outputting at least one sub-carrier signal, wherein the at least one RF signal is the aggregation of the at least one sub-carrier signal and is adjusted by a carrier aggregation technique dynamically, wherein the sub-carrier signals are non-contiguous and M is greater than 0;
a routed switch, having M input terminals and N output terminals, wherein the M input terminals are respectively coupled to the M first signal processing paths of the first signal processing unit for receiving the at least one sub-carrier signal, the routed switch dynamically switches the at least one sub-carrier signal to independent and parallel signal processing paths, and the routed switch connects each one of the input terminals to at least one of the output terminals or none of the output terminals according to a control signal, wherein N is greater than 0; and
a second signal processing unit, having N second signal processing paths respectively coupled to the N output terminals of the routed switch, for performing a second signal processing to the at least one sub-carrier signal and outputting at least one digital signal.
9. A multi-carrier transmitter, comprising:
a first signal processing unit, having K first signal processing paths, and configured for performing a first signal processing to at least one digital signal for outputting at least one sub-carrier signal, wherein the at least one digital signal is the aggregation of the at least one sub-carrier signal and is adjusted by a carrier aggregation technique dynamically, wherein the sub-carrier signals are non-contiguous, wherein K is greater than 0;
a routed switch, having K input terminals and L output terminals, wherein the K input terminals are respectively coupled to the K first signal processing paths of the first signal processing unit for receiving the at least one sub-carrier signal, the routed switch dynamically switches the at least one sub-carrier signal to independent and parallel signal processing paths, and the routed switch connects each one of the input terminals to at least one of the output terminals or none of the output terminals according to a control signal, wherein L is greater than 0; and
a second signal processing unit, having L second signal processing paths respectively coupled to the L output terminals of the routed switch, configured for performing a second signal processing to the at least one sub-carrier signal and outputting at least one radio frequency (RF) signal.
16. A multi-carrier transceiver system, comprising:
a multi-carrier receiver, comprising:
a first signal processing unit, having M first signal processing paths, and configured for performing a first signal processing to at least one first radio frequency (RF) signal for outputting at least one first sub-carrier signal, wherein the at least one first RF signal is the aggregation of the at least one sub-carrier signal and is adjusted by a carrier aggregation technique dynamically, wherein the sub-carrier signals are non-contiguous and M is greater than 0;
a first routed switch, having M input terminals and N output terminals, wherein the M input terminals are respectively coupled to the M first signal processing paths of the first signal processing unit for receiving the at least one first sub-carrier signal, the routed switch dynamically switches the at least one sub-carrier signal to independent and parallel signal processing paths, and the first routed switch connects each one of the input terminals to at least one of the output terminals or none of the output terminals according to a first control signal, wherein N is greater than 0; and
a second signal processing unit, having N second signal processing paths respectively coupled to the N output terminals of the first routed switch, configured for performing a second signal processing to the at least one first sub-carrier signal and outputting at least one first digital signal; and
a multi-carrier transmitter, configured for transmitting at least one second sub-carrier signal.
2. The multi-carrier receiver as claimed in
at least one antenna, configured for receiving the at least one RF signal; and
a digital signal processing unit, coupled to the second signal processing unit, configured for receiving the at least one digital signal, performing a digital signal processing to the at least one digital signal, and providing the control signal to the routed switch,
wherein the first signal processing unit further performs a filtering processing and a voltage enhancement processing to the at least one RF signal.
3. The multi-carrier receiver as claimed in
a first filter, configured for filtering noise of one of the at least one RF signal that is not belonging to a band of the first signal processing path;
an amplifier, coupled to the first filter, configured for enhancing one of the at least one RF signal;
an oscillator, configured for providing a frequency signal;
a mixer, coupled to the oscillator and the amplifier, configured for receiving the enhanced one of the at least one RF signal, down-converting a frequency of one of the at least one RF signal, and generating the at least one down-converted sub-carrier signal; and
a second filter, coupled to the mixer, configured for filtering noise of the at least one sub-carrier signal that is not belonging to a down-converted intermediate frequency band.
4. The multi-carrier receiver as claimed in
a demodulator, for performing a demodulation processing to one of the at least one down-converted sub-carrier signal, and generating a demodulated analog signal; and
an analog-to-digital converter, coupled to the demodulator, configured for performing an analog-to-digital conversion to the analog signal to generate one of the at least one digital signal.
5. The multi-carrier receiver as claimed in
at least one antenna, configured for receiving the a least one RF signal; and
a digital signal processing unit, coupled to the second signal processing unit, configured for receiving the at least one digital signal, performing a digital signal processing to the at least one digital signal, and providing the control signal to the routed switch.
6. The multi-carrier receiver as claimed in
a first filter, configured for filtering noise of one of the at least one RF signal that is not belonging to a band of the first signal processing path; and
an amplifier, coupled to the first filter, configured for performing a signal intensity processing to one of the at least one RF signal.
7. The multi-carrier receiver as claimed in
a demodulator, configured for performing a demodulation processing to one of the at least one sub-carrier signal, and generating a demodulated analog signal; and
an analog-to-digital converter, coupled to the demodulator, configured for performing an analog-to-digital conversion to the analog signal to generate one of the at least one digital signal.
8. The multi-carrier receiver as claimed in
at least one antenna, configured for receiving the a least one RF signal; and
a digital signal processing unit, coupled to the second signal processing unit, configured for receiving the at least one digital signal, performing a digital signal processing to the at least one digital signal, and providing the control signal to the routed switch.
10. The multi-carrier transmitter as claimed in
a digital signal processing unit, coupled to the first signal processing unit, configured for providing the at least one digital signal to the first signal processing unit, and providing the control signal to the routed switch; and
at least one antenna, for transmitting the at least one RF signal, wherein the at least one RF signal comprises the at least one sub-carrier signal,
wherein the second signal processing unit further performs a filtering processing and a voltage enhancement processing to the at least one sub-carrier signal.
11. The multi-carrier transmitter as claimed in
a digital-to-analog converter, coupled to the digital signal processing unit, configured for performing a digital-to-analog conversion to one of the at least one digital signal to generate an analog signal; and
a modulator, configured for performing a modulation processing to the analog signal, and generating one of the at least one modulated sub-carrier signal.
12. The multi-carrier transmitter as claimed in
a first filter, configured for filtering noise of the at least one sub-carrier signal that is not belonging to an intermediate frequency band of the second signal processing path;
an oscillator, configured for providing a frequency signal;
an amplifier, coupled to the first filter, configured for enhancing the at least one RF signal;
a mixer, coupled to the oscillator and the amplifier, configured for receiving the at least one filtered sub-carrier signal and the frequency signal, up-converting a frequency of the at least one sub-carrier signal, and generating the at least one frequency-increased RF signal; and
a second filter, coupled to the amplifier, configured for filtering noise of the at least one gained RF signal that is not belonging to a band of the second signal processing path.
13. The multi-carrier transmitter as claimed in
a digital signal processing unit, coupled to the first signal processing unit, configured for providing the at least one digital signal to the first signal processing unit, and providing the control signal to the routed switch; and
at least one antenna, for transmitting the at least one RF signal, wherein the at least one RF signal comprises the at least one sub-carrier signal.
14. The multi-carrier transmitter as claimed in
an amplifier, coupled to the first filter, configured for enhancing one of the at least one RF signal; and
a filter, coupled to the amplifier, configured for filtering noise of the at least one gained RF signal that is not belonging to a band of the second signal processing path.
15. The multi-carrier transmitter as claimed in
a digital signal processing unit, coupled to the first signal processing unit, configured for providing the at least one digital signal to the first signal processing unit, and providing the control signal to the routed switch; and
at least one antenna, for transmitting the at least one RF signal, wherein the at least one RF signal comprises the at least one sub-carrier signal.
17. The multi-carrier transceiver system as claimed in
at least one first antenna, configured for receiving the at least one first RF signal,
wherein the first signal processing unit further performs a filtering processing and a voltage enhancement processing to the at least one first RF signal.
18. The multi-carrier transceiver system as claimed in
19. The multi-carrier transceiver system as claimed in
a third signal processing unit, having K third signal processing paths, and configured for performing a third signal processing to at least one second digital signal for outputting at least one second sub-carrier signal, wherein K is greater than 0;
a second routed switch, having K input terminals and L output terminals, wherein the K input terminals are respectively coupled to the K third signal processing paths of the third signal processing unit for receiving the at least one second sub-carrier signal, and the second routed switch connects each one of the input terminals to at least one of the output terminals or none of the output terminals according to a second control signal, wherein L is greater than 0; and
a fourth signal processing unit, having L fourth signal processing paths respectively coupled to the L output terminals of the second routed switch, configured for performing a fourth signal processing to the at least one second sub-carrier signal and outputting at least one second RF signal, wherein the at least one second RF signal comprises the at least one second sub-carrier signal.
20. The multi-carrier transceiver system as claimed in
at least one second antenna, for transmitting the at least one second RF signal,
wherein the fourth signal processing unit further performs a filtering processing and a voltage enhancement processing to the at least one second sub-carrier signal.
21. The multi-carrier transceiver system as claimed in
22. The multi-carrier transceiver system as claimed in
a digital signal processing unit, coupled to the second signal processing unit and the third signal processing unit, configured for receiving the at least one first digital signal, performing a digital signal processing to the at least one first digital signal, providing the first control signal to the first routed switch, providing the at least one second digital signal to the third signal processing unit, and providing the second control signal to the second routed switch.
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This application claims the priority benefit of Taiwan application serial no. 99127785, filed on Aug. 19, 2010. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Disclosure
The disclosure relates to a multi-carrier receiver, a multi-carrier transmitter and a multi-carrier transceiver system.
2. Description of Related Art
Currently, wireless broadband communication technology generally uses a carrier aggregation technique to improve a spectrum efficiency of limited frequency resources and enhance data transmission capability. In the carrier aggregation technique, data required to be transmitted is distributed to sub-carriers with relatively smaller bandwidths. Since a present spectrum distribution approach limits availability of a continuously large band, in the carrier aggregation technique, the sub-carriers can be contiguous, non-contiguous or even inter-band allocation.
In an application of the carrier aggregation technique, a radio frequency (RF) transceiver system must simultaneously transmit a plurality of signals, and a common implementation thereof is to use a plurality of RF transceivers, and suitably design a bandwidth required by each RF transceiver.
The first and the second analog signal processing paths in the multi-carrier receiver 100 all preserve the maximum bandwidth (for example, the ADCs and the filters) in hardware design. It is noted that a bandwidth requirement of the ADC is not only a sum of bandwidths of all of the sub-carriers, but frequency differences of sub-carrier frequencies are also simultaneously taken into consideration, so that the RF signals can be linearly converted into digital signals, so as to maintain signal qualities of the converted sub-carrier signals. If the frequency differences of the sub-carrier frequencies are relatively greater or in case of the inter-band distribution, channel fading of the sub-carriers are different, so that the ADC is required to have relatively greater dynamic range. However, during practical operations, the received sub-carriers may not be evenly distributed to the two analog signal processing paths, and this situation causes a waste of the hardware circuit and power consumption.
Regarding other techniques for processing multi-carrier signals, the RF signal is generally converted into the digital signal, and then digital filtering processing is performed, so as to implement a multi-carrier transceiver capable of simultaneously processing a plurality of non-contiguous sub-carriers. However, these conventional multi-carrier signal processing methods still require ADCs of high complexity and high hardware cost, and meanwhile bandwidth requirements thereof are also very high. Therefore, in a multi-carrier transceiver capable of simultaneously processing a plurality of non-contiguous sub-carriers, it is an important issue to reduce complexity and hardware cost of the overall multi-carrier transceiver system.
An exemplary embodiment of the disclosure provides a multi-carrier receiver including a first signal processing unit, a routed switch and a second signal processing unit. The first signal processing unit has M first signal processing paths, and performs a first signal processing to at least one radio frequency (RF) signal for outputting at least one sub-carrier signal, where M is greater than 0. The routed switch has M input terminals and N output terminals, where the M input terminals are respectively coupled to the M first signal processing paths of the first signal processing unit for receiving the at least one sub-carrier signal. The routed switch connects each input terminal to at least one output terminal or none of the output terminals according to a control signal, where N is greater than 0. The second signal processing unit has N second signal processing paths respectively coupled to the N output terminals of the routed switch for performing a second signal processing to the at least one sub-carrier signal and outputting at least one digital signal.
An exemplary embodiment of the disclosure provides a multi-carrier transmitter including a first signal processing unit, a routed switch and a second signal processing unit. The first signal processing unit has K first signal processing paths, and performs a first signal processing to at least one digital signal for outputting at least one sub-carrier signal, where K is greater than 0. The routed switch has K input terminals and L output terminals, where the K input terminals are respectively coupled to the K first signal processing paths of the first signal processing unit for receiving the at least one sub-carrier signal. The routed switch connects each input terminal to at least one output terminal or none of the output terminals according to a control signal, where L is greater than 0. The second signal processing unit has L second signal processing paths respectively coupled to the L output terminals of the routed switch for performing a second signal processing to the at least one sub-carrier signal and outputting at least one RF signal.
An exemplary embodiment of the disclosure provides a multi-carrier transceiver system including a multi-carrier receiver and a multi-carrier transmitter. The multi-carrier receiver includes a first signal processing unit, a first routed switch and a second signal processing unit. The first signal processing unit has M first signal processing paths, and performs a first signal processing to at least one first RF signal for outputting at least one first sub-carrier signal, where M is greater than 0. The first routed switch has M input terminals and N output terminals, where the M input terminals are respectively coupled to the M first signal processing paths of the first signal processing unit for receiving the at least one first sub-carrier signal. The first routed switch connects each input terminal to at least one output terminal or none of the output terminals according to a first control signal, where N is greater than 0 The second signal processing unit has N second signal processing paths respectively coupled to the N output terminals of the first routed switch for performing a second signal processing to the at least one first sub-carrier signal and outputting at least one first digital signal. The multi-carrier transmitter transmits at least one second sub-carrier signal.
In order to make the aforementioned and other features and advantages of the disclosure comprehensible, several exemplary embodiments accompanied with figures are described in detail below.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
Referring to
The first signal processing unit 12 performs signal processing (for example, signal filtering or signal intensity processing) to the one or a plurality of the received sub-carrier signals through M parallel signal processing paths, where M is greater than 0. The routed switch 13 is coupled to the first signal processing unit 12 and the second signal processing unit 14, and receives a control signal CS from the digital signal processing unit 15. The first signal processing unit 12 receives one or a plurality of the sub-carrier signals on two signal paths. However, the disclosure is not limited thereto, and in other embodiments of the disclosure, the first signal processing unit 12 can further down-convert a frequency of at least one RF signal to output an intermediate frequency signal.
In the exemplary embodiment, the routed switch 13 is a signal path switching device having M input terminals and N output terminals, where M and N are greater than 0. Referring to
The digital signal processing unit 15 can obtain information of the sub-carriers aggregated according to the carrier aggregation technique by receiving an upper-layer communication protocol signalling transmitted by a base station, and generate the control signal CS according to the information of the sub-carriers, so as to notify the routed switch 13 to suitably switch the signal processing paths. The sub-carriers on each one of the signal processing paths can be contiguous, non-contiguous or inter-band. Moreover, the sub-carriers used for transmitting data can be dynamically varied.
Referring to
The disclosure is not limited to the first exemplary embodiment, and in other embodiments of the disclosure, the multi-carrier receiver can only include one antenna, and the first signal processing unit 12 can receive one or a plurality of sub-carrier signals of two bands from the single antenna. Moreover, in other embodiments of the disclosure, M can be any integer different to 2 and greater than 0, and N can be any integer different to 3 and greater than 0. After the system structure of the multi-carrier receiver 200 is introduced, detailed circuit technical features of the multi-carrier receiver are introduced below with reference of
Referring to
The routed switch 13 selects to output the sub-carrier signals of each one of the input terminals to one of the output terminals, multiple output terminals or none of the output terminals according to the control signal CS provided by the digital signal processing unit 15. Referring to
Moreover, according to
In the second exemplary embodiment, the second signal processing unit 14 includes five parallel signal processing paths, which are respectively coupled to the output terminals of the routed switch 13 for processing the received sub-carrier signals. A first signal processing path of the second signal processing unit 14 includes a demodulator 340 and an analog-to-digital converter (ADC) 341. The demodulator 340 demodulates the sub-carrier signal, and transmits the demodulated analog signal to the ADC 341 for converting it into a digital signal (or digital domain), and then the digital signal is transmitted to the digital signal processing unit 15 for further processing. Since the digital signal processing is not a technical main point of the disclosure, and those skilled in the art have already known the follow-up steps of the digital signal processing, a detailed operation of the digital signal processing unit 15 is not described herein.
Similar to the processing methods of the demodulator 340 and the ADC 341, the other parallel signal processing paths of the second signal processing unit 14, for example, a demodulator 342 and an ADC 343 of a second signal processing path, a demodulator 344 and an ADC 345 of a third signal processing path, a demodulator 346 and an ADC 347 of a fourth signal processing path, and a demodulator 348 and an ADC 349 of a fifth signal processing path may demodulate different sub-carrier signals, and convert the demodulated analog signals into digital signals, and transmit the digital signals to the digital processing unit 15 for further processing. Moreover, since the five parallel signal processing paths of the second signal processing unit 14 are mutually independent, the signal processing paths can perform different signal intensity enhancement processing to different sub-carrier signals, so as to balance different channel fading effects of the sub-carrier signals.
Based on the operation of the routed switch 23, the multi-carrier transmitter 400 can aggregate one or a plurality of sub-carriers or carrier components into one RF signal according to the carrier aggregation technique, and transmit it to any of signal processing paths of the fourth signal processing unit 22. Referring to
Referring to
Referring to
In the sixth exemplary embodiment, the routed switch 23 outputs the sub-carrier signal of each one of input terminals to one of output terminals, multiple output terminals or none of the output terminals according to the control signal CS provided by the digital signal processing unit 25. Referring to
According to
The fourth signal processing unit 22 is coupled to the routed switch 23, and processes the received one or a plurality of sub-carrier signals through two independent and parallel signal processing paths. In detail, the fourth signal processing unit 22 has the first signal processing path including a filter 505, an oscillator 503, a mixer 504, an amplifier 502 and a filter 501. The filter 505 filters noises and other analog signals that are not belonging to the intermediate-frequency band (for example, 500 MHz). The mixer 504 is coupled to the filter 505 and the oscillator 503 for receiving the filtered analog signal, and up-converting the filtered analog signal according to a frequency signal provided by the oscillator 503 to generate a RF signal (for example, 1.8 GHz). The frequency-increased RF signal still includes one or a plurality of sub-carrier signals. The amplifier 502 is coupled to the mixer 504 and the filter 501, and is used for performing signal intensity enhancement (or voltage gain) processing to the one or a plurality of RF signals of such band. The filter 501 further filters noises of the RF signals that are not belonging to the first band (for example, 1.8 GHz), and outputs the gained RF signals to the antenna 20 for transmitting to the receiver.
Referring to
Comparatively, a curve 62 represents a bandwidth requirement of the multi-carrier receiver 200 provided by the first exemplary embodiment of
Connection relations and operation principles of the antenna 81 and the antenna 82, the first signal processing unit 83, the routed switch 84, the second signal processing unit 85, the digital signal processing unit 86 of the multi-carrier transceiver system 800 are similar to that of the antenna 10 and the antenna 11, the first signal processing unit 12, the routed switch 13, the second signal processing unit 14 and the digital signal processing unit 15 of the multi-carrier receiver 200 of the first exemplary embodiment. Similarly, Connection relations and operation principles of the digital signal processing unit 86, the third signal processing unit 87, the routed switch 88, the fourth signal processing unit 89, the antenna 90 and the antenna 91 used for transmitting RF signals of the multi-carrier transceiver system 800 are similar to that of the digital signal processing unit 25, the third signal processing unit 24, the routed switch 23, the fourth signal processing unit 22, the antenna 20 and the antenna 21 of the multi-carrier transmitter 400 of the fourth exemplary embodiment. Besides that the digital signal processing unit 86 respectively provides control signals CS1 and CS2 to the routed switch 84 and the routed switch 88, other technical details of the multi-carrier transceiver system 800 are not introduced herein.
The multi-carrier receivers, the multi carrier transmitters and the multi-carrier transceiver systems provided by the exemplary embodiments of the disclosure can be applied to a wireless communication device, and the wireless communication device is, for example, a digital television, a digital set-top box (STB), a desk-top computer, a notebook computer, a flat-panel computer, a mobile phone, a smartphone, an electronic book or a multimedia player.
In summary, the exemplary embodiments of the disclosure provide a multi-carrier receiver, a multi-carrier transmitter and a multi-carrier transceiver system. In the multi-carrier receiver or the multi-carrier transmitter, the signal processing units of two stages are used to process the RF signals and the sub-carrier signals therein. Moreover, between the signal processing units of the two stages, the routed switch is used to dynamically allocate different sub-carrier signals to independent and parallel signal processing paths, so as to reduce bandwidth requirements of the parallel signal processing paths, and lower complexity and hardware cost of the multi-carrier receiver or the multi-carrier transmitter. Moreover, hardware idle rate and power consumption can also be reduced, and an effect of simultaneously processing multiple non-contiguous sub-carrier signals can be achieved.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Wu, Ping-Hsun, Lai, Chang-Ming, Li, Jian-Yu
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